Analyses of vector Gaussian beam propagation and the validity of paraxial and spherical approximations

被引:127
作者
Chen, CG [1 ]
Konkola, PT [1 ]
Ferrera, J [1 ]
Heilmann, RK [1 ]
Schattenburg, ML [1 ]
机构
[1] MIT, Cambridge, MA 02139 USA
来源
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION | 2002年 / 19卷 / 02期
关键词
Approximation theory - Boundary conditions - Dielectric materials - Diffraction - Interferometers - Light propagation - Single mode fibers;
D O I
10.1364/JOSAA.19.000404
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The analysis of many systems in optical communications and metrology utilizing Gaussian beams, such as free-space propagation from single-mode fibers, point diffraction interferometers, and interference lithography, would benefit from an accurate analytical model of Gaussian beam propagation. We present a full vector analysis of Gaussian beam propagation by using the well-known method of the angular spectrum of plane waves. A Gaussian beam is assumed to traverse a charge-free, homogeneous, isotropic, linear, and nonmagnetic dielectric medium. The angular spectrum representation, in its vector form, is applied to a problem with a Gaussian intensity boundary condition. After some mathematical manipulation, each nonzero propagating electric field component is expressed in terms of a power-series expansion. Previous analytical work derived a power series for the transverse field, where the first term (zero order) in the expansion corresponds to the usual scalar paraxial approximation. We confirm this result and derive a corresponding longitudinal power series. We show that the leading longitudinal term is comparable in magnitude with the first transverse term above the scalar paraxial term, thus indicating that a full vector theory is required when going beyond the scalar paraxial approximation. In spite of the advantages of a compact analytical formalism, enabling rapid and accurate modeling of Gaussian beam systems, this approach has a notable drawback. The higher-order terms diverge at locations that are sufficiently far from the initial boundary, yielding unphysical results. Hence any meaningful use of the expansion approach calls for a careful study of its range of applicability. By considering the transition of a Gaussian wave from the paraxial to the spherical regime, we are able to derive a simple expression for the range within which the series produce numerically satisfying answers. (C) 2002 Optical Society of America.
引用
收藏
页码:404 / 412
页数:9
相关论文
共 15 条
[1]   GAUSSIAN-BEAM PROPAGATION BEYOND THE PARAXIAL APPROXIMATION [J].
AGRAWAL, GP ;
PATTANAYAK, DN .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1979, 69 (04) :575-578
[2]  
BORN M, 1980, PRINCIPLES OPTICS, P752
[4]  
CHEN CG, IN PRESS J VAC SCI B
[5]  
GRADSHTEYN IS, 1994, TABLE INTEGRALS SERI, P978
[6]  
GRADSHTEYN IS, 1994, TABLE INTEGRALS SERI, P737
[7]   ON PROPAGATION OF GAUSSIAN BEAMS OF LIGHT THROUGH LENSLIKE MEDIA INCLUDING THOSE WITH A LOSS OR GAIN VARIATION [J].
KOGELNIK, H .
APPLIED OPTICS, 1965, 4 (12) :1562-&
[8]   MAXWELL TO PARAXIAL WAVE OPTICS [J].
LAX, M ;
LOUISELL, WH ;
MCKNIGHT, WB .
PHYSICAL REVIEW A, 1975, 11 (04) :1365-1370
[9]   A holographic phase-shifting interferometer technique to measure in-plane distortion [J].
Lim, MH ;
Ferrera, J ;
Pipe, KP ;
Smith, HI .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 1999, 17 (06) :2703-2706
[10]  
OSHEA DC, 1985, ELEMENTS MODERN OPTI, P247